School of Science and Engineering, University of Dundee, Scotland, UK.
School of Computing, Engineering and Built Environment, Edinburgh Napier University, Edinburgh, UK.
J Biophotonics. 2023 Sep;16(9):e202300100. doi: 10.1002/jbio.202300100. Epub 2023 Jun 16.
Optical coherence tomography angiography (OCTA) has successfully demonstrated its viability for clinical applications in dermatology. Due to the high optical scattering property of skin, extracting high-quality OCTA images from skin tissues requires at least six-repeated scans. While the motion artifacts from the patient and the free hand-held probe can lead to a low-quality OCTA image. Our deep-learning-based scan pipeline enables fast and high-quality OCTA imaging with 0.3-s data acquisition. We utilize a fast scanning protocol with a 60 μm/pixel spatial interval rate and introduce angiography-reconstruction-transformer (ART) for 4× super-resolution of low transverse resolution OCTA images. The ART outperforms state-of-the-art networks in OCTA image super-resolution and provides a lighter network size. ART can restore microvessels while reducing the processing time by 85%, and maintaining improvements in structural similarity and peak-signal-to-noise ratio. This study represents that ART can achieve fast and flexible skin OCTA imaging while maintaining image quality.
光学相干断层扫描血管造影术(OCTA)已成功证明其在皮肤科临床应用中的可行性。由于皮肤的高光学散射特性,从皮肤组织中提取高质量的 OCTA 图像至少需要重复扫描六次。由于患者和自由手持探头的运动伪影,可能会导致 OCTA 图像质量较低。我们基于深度学习的扫描管道可实现 0.3 秒数据采集的快速和高质量 OCTA 成像。我们利用具有 60μm/pixel 空间间隔率的快速扫描协议,并引入血管造影重建-Transformer(ART)对低横向分辨率 OCTA 图像进行 4×超分辨率处理。ART 在 OCTA 图像超分辨率方面优于最先进的网络,并提供更轻的网络尺寸。ART 可以在减少 85%处理时间的同时恢复微血管,同时保持结构相似性和峰值信噪比的提高。本研究表明,ART 可以在保持图像质量的同时实现快速灵活的皮肤 OCTA 成像。